National Creative Research Initiative for Functionally Antagonistic Nano-Engineering, Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Republic of Korea.
Small. 2023 Jun;19(23):e2207140. doi: 10.1002/smll.202207140. Epub 2023 Mar 12.
The advancement in smart devices and soft robotics necessitates the use of multiresponsive soft actuators with high actuation stroke and stable reversibility for their use in real-world applications. Here, this work reports a magnetically and electrically dual responsive soft actuator based on neodymium and iron bimetallic organic frameworks (NdFeMOFs@700). The ferromagnetic NdFeMOFs@700 exhibits a porous carbon structure with excellent magnetization saturation (166.96 emu g ) which allows its application to a dual functional material in both magnetoactive and electro-ionic actuations. The electro-ionic soft actuator, which is fabricated using NdFeMOFs@700 and PEDOT-PSS, demonstrates 4.5 times higher ionic charge storage capacity (68.21 mF cm ) and has excellent cycle stability compared with the PEDOT-PSS based actuator. Under a low sinusoidal input voltage of 1 V, the dual-responsive actuator displays bending displacement of 15.46 mm and also generates deflection of 10 mm at 50 mT. Present results show that the ferromagnetic bimetallic organic frameworks can open a new way to make dual responsive soft actuators due to the hierarchically porous structures with its high redox activity, superior magnetic properties, and larger electrochemical capacitance. With the NdFeMOFs@700 based soft actuators, walking movement of a starfish robot is demonstrated by applying both the magnetic and electric fields.
智能设备和软机器人的进步需要使用多响应软致动器,其具有高致动行程和稳定的可还原性,以便在实际应用中使用。在这里,这项工作报道了一种基于钕铁双金属有机骨架(NdFeMOFs@700)的磁电双响应软致动器。铁磁 NdFeMOFs@700 具有优异的磁化饱和(166.96 emu g)的多孔碳结构,允许其在磁活性和电离子致动的双重功能材料中应用。使用 NdFeMOFs@700 和 PEDOT-PSS 制造的电离子软致动器具有 4.5 倍更高的离子电荷存储容量(68.21 mF cm),并且与基于 PEDOT-PSS 的致动器相比具有出色的循环稳定性。在 1 V 的低正弦输入电压下,双响应致动器显示出 15.46 毫米的弯曲位移,并且在 50 mT 时也产生 10 毫米的偏置。目前的结果表明,由于具有高氧化还原活性、优异的磁性能和更大的电化学电容的分级多孔结构,铁磁双金属有机骨架可以为制造双响应软致动器开辟新途径。通过施加磁场和电场,展示了基于 NdFeMOFs@700 的软致动器的海星机器人的行走运动。